Harrison Joe J, Ceri Howard, Yerly Jerome, Stremick Carol A, Hu Yaoping, Martinuzzi Robert, Turner Raymond J
Department of Biological Sciences and Biofilm Research Group, University of Calgary, Canada.
Biol Proced Online. 2006;8:194-215. doi: 10.1251/bpo127. Epub 2006 Dec 19.
Microbes frequently live within multicellular, solid surface-attached assemblages termed biofilms. These microbial communities have architectural features that contribute to population heterogeneity and consequently to emergent cell functions. Therefore, three-dimensional (3D) features of biofilm structure are important for understanding the physiology and ecology of these microbial systems. This paper details several protocols for scanning electron microscopy and confocal laser scanning microscopy (CLSM) of biofilms grown on polystyrene pegs in the Calgary Biofilm Device (CBD). Furthermore, a procedure is described for image processing of CLSM data stacks using amira, a virtual reality tool, to create surface and/or volume rendered 3D visualizations of biofilm microorganisms. The combination of microscopy with microbial cultivation in the CBD - an apparatus that was designed for high-throughput susceptibility testing - allows for structure-function analysis of biofilms under multivariate growth and exposure conditions.
微生物常常生活在被称为生物膜的多细胞、附着于固体表面的聚集体中。这些微生物群落具有有助于种群异质性并进而促成新出现的细胞功能的结构特征。因此,生物膜结构的三维(3D)特征对于理解这些微生物系统的生理学和生态学很重要。本文详细介绍了在卡尔加里生物膜装置(CBD)中聚苯乙烯柱上生长的生物膜的扫描电子显微镜和共聚焦激光扫描显微镜(CLSM)的几种方案。此外,还描述了一种使用虚拟现实工具amira对CLSM数据堆栈进行图像处理的程序,以创建生物膜微生物的表面和/或体积渲染3D可视化。显微镜与在CBD中进行微生物培养(一种为高通量药敏试验设计的仪器)相结合,能够在多变量生长和暴露条件下对生物膜进行结构-功能分析。